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Preparation and In Vitro Characterization of Magnetized miR-modified Endothelial Cells
Published on: May 2, 2017
Endothelial delivery of antioxidant enzymes loaded into non-polymeric magnetic nanoparticles
Michael Chorny1, Elizabeth Hood, Robert J Levy
1Department of Pediatrics, The Children's Hospital of Philadelphia, Abramson Research Bldg., Ste. 702, 3615 Civic Center Blvd., Philadelphia, PA 19104, USA. chorny@email.chop.edu
Abstract:
Antioxidant enzymes have shown promise as a therapy for pathological conditions involving increased production of reactive oxygen species (ROS). However the efficiency of their use for combating oxidative stress is dependent on the ability to achieve therapeutically adequate levels of active enzymes at the site of ROS-mediated injury. Thus, the implementation of antioxidant enzyme therapy requires a strategy enabling both guided delivery to the target site and effective protection of the protein in its active form. To address these requirements we developed magnetically responsive nanoparticles (MNP) formed by precipitation of calcium oleate in the presence of magnetite-based ferrofluid (controlled aggregation/precipitation) as a carrier for magnetically guided delivery of therapeutic proteins. We hypothesized that antioxidant enzymes, catalase and superoxide dismutase (SOD), can be protected from proteolytic inactivation by encapsulation in MNP. We also hypothesized that catalase-loaded MNP applied with a high-gradient magnetic field can rescue endothelial cells from hydrogen peroxide toxicity in culture. To test these hypotheses, a family of enzyme-loaded MNP formulations were prepared and characterized with respect to their magnetic properties, enzyme entrapment yields and protection capacity. SOD- and catalase-loaded MNP were formed with average sizes ranging from 300 to 400 nm, and a protein loading efficiency of 20-33%. MNP were strongly magnetically responsive (magnetic moment at saturation of 14.3 emu/g) in the absence of magnetic remanence, and exhibited a protracted release of their cargo protein in plasma. Catalase stably associated with MNP was protected from proteolysis and retained 20% of its initial enzymatic activity after 24h of exposure to pronase. Under magnetic guidance catalase-loaded MNP were rapidly taken up by cultured endothelial cells providing increased resistance to oxidative stress (62+/-12% cells rescued from hydrogen peroxide induced cell death vs. 10+/-4% under non-magnetic conditions). We conclude that non-polymeric MNP formed using the controlled aggregation/precipitation strategy are a promising carrier for targeted antioxidant enzyme therapy, and in combination with magnetic guidance can be applied to protect endothelial cells from oxidative stress mediated damage. This protective effect of magnetically targeted MNP impregnated with antioxidant enzymes can be highly relevant for the treatment of cardiovascular disease and should be further investigated in animal models.
Insights
Magnetically responsive nanoparticles effectively deliver antioxidant enzymes like catalase and superoxide dismutase to target sites. This protects cells from oxidative stress and shows promise for treating conditions like cardiovascular disease.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Enzyme Therapy
Background:
- Reactive oxygen species (ROS) contribute to various pathological conditions.
- Antioxidant enzymes are promising but require effective delivery and protection.
- Current strategies struggle to achieve therapeutic enzyme levels at injury sites.
Purpose of the Study:
- To develop magnetically responsive nanoparticles (MNP) for targeted delivery of antioxidant enzymes.
- To evaluate the protective capacity of encapsulated enzymes against proteolytic degradation.
- To assess the efficacy of magnetically guided MNP in protecting endothelial cells from oxidative stress.
Main Methods:
- Fabrication of MNP via controlled aggregation/precipitation of calcium oleate with ferrofluid.
- Encapsulation of catalase and superoxide dismutase (SOD) within MNP.
- Characterization of MNP size, magnetic properties, loading efficiency, and enzyme release kinetics.
- Assessment of enzyme protection against pronase and cell rescue assays using hydrogen peroxide.
Main Results:
- SOD- and catalase-loaded MNP (300-400 nm) showed 20-33% protein loading efficiency.
- MNP exhibited strong magnetic responsiveness and protracted cargo release.
- Encapsulated catalase retained 20% activity after 24h pronase exposure.
- Magnetically guided MNP rescued 62% of endothelial cells from hydrogen peroxide toxicity.
Conclusions:
- Non-polymeric MNP are effective carriers for targeted antioxidant enzyme therapy.
- Magnetic guidance enhances cellular uptake and protection against oxidative stress.
- This approach holds potential for treating cardiovascular diseases and warrants further investigation.

